4.6 Article

Electrospun TiO2 nanofibers integrating space-separated magnetic nanoparticles and heterostructures for recoverable and efficient photocatalyst

Journal

JOURNAL OF MATERIALS CHEMISTRY A
Volume 2, Issue 31, Pages 12304-12310

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c4ta02224f

Keywords

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Funding

  1. National Natural Science Funding of China [21076094, 21061010, 21261014, 21303080]
  2. Natural Science Foundation of Inner Mongolia [2013MS0211, 2013MS0216]
  3. Key Laboratory of Nanodevices and Applications, Suzhou Institute of Nano-Tech and Nano-Bionics, Chinese Academy of Sciences [13ZS03]
  4. Cooperative Project of Tongliao-IMUN [SXYB2012027, SXYB2012072]
  5. Ph.D. Initiative Science Foundation of Inner Mongolia University for the Nationalities [BS288]
  6. Science Foundation of Inner Mongolia University for the Nationalities [NMD1314]

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TiO2 nanofibers integrating space-separated magnetic nanoparticles and heterostructures have been fabricated to construct multifunctional photocatalysts with excellent photocatalytic activity and magnetic recoverability. The electrospinning technique has been employed to prepare the Fe3O4-embedded TiO2 (Fe3O4@TiO2) magnetic nanofibers. TiO2/CdS heterostructures (Fe3O4@TiO2/CdS) formed by depositing CdS nanoparticles onto the Fe3O4@TiO2 nanofibers have been obtained by a hydrothermal process. The heterostructures improve the photocatalytic activity and widen the range of solar light response. Under visible light irradiation, the photocatalytic activity of the Fe3O4@TiO2/CdS nanofibers is 5.11 times higher than that of the Fe3O4@TiO2 nanofibers and is 1.22 times than that of CdS nanoparticles. In addition, it exhibits a slight increase under simulated solar light with the photocatalytic degradation ratio 1.1 times higher than that under visible light. The loading amounts of CdS only have effects on the photocatalytic activity under visible light and simulated solar light. The Fe3O4@TiO2/CdS nanofiber exhibits a saturation magnetization strength of 1.572 emu g(-1) and can be effortlessly separated and recovered by applying a contactless magnetic field. The cycling stability is durable after magnetic separation and recycling.

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